Literature DB >> 34208830

Sharing Biomedical Data: Strengthening AI Development in Healthcare.

Tania Pereira1, Joana Morgado1,2, Francisco Silva1, Michele M Pelter3, Vasco Rosa Dias1, Rita Barros1, Cláudia Freitas4,5, Eduardo Negrão4, Beatriz Flor de Lima4, Miguel Correia da Silva4, António J Madureira4,5, Isabel Ramos4,5, Venceslau Hespanhol4,5, José Luis Costa5,6,7, António Cunha1,8, Hélder P Oliveira1,2.   

Abstract

Artificial intelligence (AI)-based solutions have revolutionized our world, using extensive datasets and computational resources to create automatic tools for complex tasks that, until now, have been performed by humans. Massive data is a fundamental aspect of the most powerful AI-based algorithms. However, for AI-based healthcare solutions, there are several socioeconomic, technical/infrastructural, and most importantly, legal restrictions, which limit the large collection and access of biomedical data, especially medical imaging. To overcome this important limitation, several alternative solutions have been suggested, including transfer learning approaches, generation of artificial data, adoption of blockchain technology, and creation of an infrastructure composed of anonymous and abstract data. However, none of these strategies is currently able to completely solve this challenge. The need to build large datasets that can be used to develop healthcare solutions deserves special attention from the scientific community, clinicians, all the healthcare players, engineers, ethicists, legislators, and society in general. This paper offers an overview of the data limitation in medical predictive models; its impact on the development of healthcare solutions; benefits and barriers of sharing data; and finally, suggests future directions to overcome data limitations in the medical field and enable AI to enhance healthcare. This perspective is dedicated to the technical requirements of the learning models, and it explains the limitation that comes from poor and small datasets in the medical domain and the technical options that try or can solve the problem related to the lack of massive healthcare data.

Entities:  

Keywords:  AI-based healthcare solutions; biomedical data; massive databases; medical imaging; shared data

Year:  2021        PMID: 34208830     DOI: 10.3390/healthcare9070827

Source DB:  PubMed          Journal:  Healthcare (Basel)        ISSN: 2227-9032


  30 in total

1.  Semantic integration in healthcare networks.

Authors:  Richard Lenz; Mario Beyer; Klaus A Kuhn
Journal:  Int J Med Inform       Date:  2006-06-12       Impact factor: 4.046

Review 2.  Computer-aided diagnosis in medical imaging: historical review, current status and future potential.

Authors:  Kunio Doi
Journal:  Comput Med Imaging Graph       Date:  2007-03-08       Impact factor: 4.790

3.  The Cancer Imaging Archive (TCIA): maintaining and operating a public information repository.

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Journal:  J Digit Imaging       Date:  2013-12       Impact factor: 4.056

4.  Cardiologist-level arrhythmia detection and classification in ambulatory electrocardiograms using a deep neural network.

Authors:  Awni Y Hannun; Pranav Rajpurkar; Masoumeh Haghpanahi; Geoffrey H Tison; Codie Bourn; Mintu P Turakhia; Andrew Y Ng
Journal:  Nat Med       Date:  2019-01-07       Impact factor: 53.440

5.  Large-Scale Assessment of a Smartwatch to Identify Atrial Fibrillation.

Authors:  Marco V Perez; Kenneth W Mahaffey; Haley Hedlin; John S Rumsfeld; Ariadna Garcia; Todd Ferris; Vidhya Balasubramanian; Andrea M Russo; Amol Rajmane; Lauren Cheung; Grace Hung; Justin Lee; Peter Kowey; Nisha Talati; Divya Nag; Santosh E Gummidipundi; Alexis Beatty; Mellanie True Hills; Sumbul Desai; Christopher B Granger; Manisha Desai; Mintu P Turakhia
Journal:  N Engl J Med       Date:  2019-11-14       Impact factor: 176.079

6.  SAPP: functional genome annotation and analysis through a semantic framework using FAIR principles.

Authors:  Jasper J Koehorst; Jesse C J van Dam; Edoardo Saccenti; Vitor A P Martins Dos Santos; Maria Suarez-Diez; Peter J Schaap
Journal:  Bioinformatics       Date:  2018-04-15       Impact factor: 6.937

7.  Reliability of Supervised Machine Learning Using Synthetic Data in Healthcare: A Model to Preserve Privacy for Data Sharing.

Authors:  Debbie Rankin; Michaela Black; Raymond Bond; Jonathan Wallace; Maurice Mulvenna; Gorka Epelde
Journal:  JMIR Med Inform       Date:  2020-06-04

8.  AI-Assisted Decision-making in Healthcare: The Application of an Ethics Framework for Big Data in Health and Research.

Authors:  Tamra Lysaght; Hannah Yeefen Lim; Vicki Xafis; Kee Yuan Ngiam
Journal:  Asian Bioeth Rev       Date:  2019-09-12

Review 9.  Blockchain distributed ledger technologies for biomedical and health care applications.

Authors:  Tsung-Ting Kuo; Hyeon-Eui Kim; Lucila Ohno-Machado
Journal:  J Am Med Inform Assoc       Date:  2017-11-01       Impact factor: 4.497

10.  Impact of a deep learning assistant on the histopathologic classification of liver cancer.

Authors:  Amirhossein Kiani; Bora Uyumazturk; Pranav Rajpurkar; Alex Wang; Rebecca Gao; Erik Jones; Yifan Yu; Curtis P Langlotz; Robyn L Ball; Thomas J Montine; Brock A Martin; Gerald J Berry; Michael G Ozawa; Florette K Hazard; Ryanne A Brown; Simon B Chen; Mona Wood; Libby S Allard; Lourdes Ylagan; Andrew Y Ng; Jeanne Shen
Journal:  NPJ Digit Med       Date:  2020-02-26
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  2 in total

1.  A Vision-Based System for Stage Classification of Parkinsonian Gait Using Machine Learning and Synthetic Data.

Authors:  Jorge Marquez Chavez; Wei Tang
Journal:  Sensors (Basel)       Date:  2022-06-13       Impact factor: 3.847

Review 2.  Towards Machine Learning-Aided Lung Cancer Clinical Routines: Approaches and Open Challenges.

Authors:  Francisco Silva; Tania Pereira; Inês Neves; Joana Morgado; Cláudia Freitas; Mafalda Malafaia; Joana Sousa; João Fonseca; Eduardo Negrão; Beatriz Flor de Lima; Miguel Correia da Silva; António J Madureira; Isabel Ramos; José Luis Costa; Venceslau Hespanhol; António Cunha; Hélder P Oliveira
Journal:  J Pers Med       Date:  2022-03-16
  2 in total

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